Deck 4: Regression Models

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سؤال
In regression,a dependent variable is sometimes called a predictor variable.
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سؤال
The dependent variable is also called the response variable.
سؤال
In any regression model,there is an implicit assumption that a relationship exists between the variables.
سؤال
Summing the error values in a regression model is misleading because negative errors cancel out positive errors.
سؤال
One purpose of regression is to predict the value of one variable based on the other variable.
سؤال
Error is the difference in the actual value and the predicted value.
سؤال
Estimates of the slope,intercept,and error of a regression model are found from sample data.
سؤال
In a scatter diagram,the dependent variable is typically plotted on the horizontal axis.
سؤال
The coefficient of determination takes on values between -1 and + 1.
سؤال
One purpose of regression is to understand the relationship between variables.
سؤال
There is no relationship between variables unless the data points lie in a straight line.
سؤال
The SST measures the total variability in the dependent variable about the regression line.
سؤال
The coefficient of determination gives the proportion of the variability in the dependent variable that is explained by the regression equation.
سؤال
The SSE measures the total variability in the independent variable about the regression line.
سؤال
The variable to be predicted is the dependent variable.
سؤال
The regression line minimizes the sum of the squared errors.
سؤال
In regression,there is random error that can be predicted.
سؤال
The SSR indicates how much of the total variability in the dependent variable is explained by the regression model.
سؤال
In regression,an independent variable is sometimes called a response variable.
سؤال
A scatter diagram is a graphical depiction of the relationship between the dependent and independent variables.
سؤال
An F-test is used to determine if there is a relationship between the dependent and independent variables.
سؤال
The errors in a regression model are assumed to have an increasing mean.
سؤال
The correlation coefficient has values between −1 and +1.
سؤال
When the significance level is small enough in the F-test,we can reject the null hypothesis that there is no linear relationship.
سؤال
The error standard deviation is estimated by MSE.
سؤال
The multiple regression model includes multiple slope coefficients.
سؤال
Often,a plot of the residuals will highlight any glaring violations of the assumptions.
سؤال
If the significance level for the F-test is high enough,there is a relationship between the dependent and independent variables.
سؤال
The coefficients of each independent variable in a multiple regression model represent slopes.
سؤال
For statistical tests of significance about the coefficients,the null hypothesis is that the slope is 1.
سؤال
The errors in a regression model are assumed to have zero variance.
سؤال
The null hypothesis in the F-test is that there is a linear relationship between the X and Y variables.
سؤال
The multiple regression model includes several intercept terms.
سؤال
The regression model assumes the error terms are dependent.
سؤال
The regression model assumes the errors are normally distributed.
سؤال
Errors are also called residuals.
سؤال
The multiple regression model includes several dependent variables.
سؤال
Both the p-value for the F-test and r2 can be interpreted the same with multiple regression models as they are with simple linear models.
سؤال
If the assumptions of regression have been met,errors plotted against the independent variable will typically show patterns.
سؤال
The standard error of the estimate is also called the variance of the regression.
سؤال
Dummy variables for regression analysis can take on a value of either -1 or +1.
سؤال
A dummy variable can be assigned up to three values.
سؤال
The best model is a statistically significant model with a high r-square and few variables.
سؤال
A reference to the criterion used to select the regression line,to minimize the squared distances between the estimated straight line and the observed values is called

A)Mean square error.
B)Sum of Squares.
C)Maximum likelihood.
D)R-square.
E)Least Squares.
سؤال
The number of dummy variables must equal 1 less than the number of categories of the qualitative variable.
سؤال
Which of the following statements is true regarding a scatter diagram?

A)It provides very little information about the relationship between the regression variables.
B)It is a plot of the independent and dependent variables.
C)It is a line chart of the independent and dependent variables.
D)It has a value between -1 and +1.
E)It gives the percent of variation in the dependent variable that is explained by the independent variable.
سؤال
Which of the following equalities is correct?

A)SST = SSR + SSE
B)SSR = SST + SSE
C)SSE = SSR + SST
D)SST = SSC + SSR
E)SSE = Actual Value - Predicted Value
سؤال
If computing a causal linear regression model of Y = a + bX and the resultant r2 is very near zero,then one would be able to conclude that

A)Y = a + bX is a good forecasting method.
B)Y = a + bX is not a good forecasting method.
C)a multiple linear regression model is a good forecasting method for the data.
D)a multiple linear regression model is not a good forecasting method for the data.
E)None of the above
سؤال
Transformations may be used when nonlinear relationships exist between variables.
سؤال
A variable should be added to the model regardless of the impact (increase or decrease)on the adjusted r2 value.
سؤال
In regression,a binary variable is also called an indicator variable.
سؤال
Another name for a dummy variable is a binary variable.
سؤال
If multicollinearity exists,then individual interpretation of the variables is questionable,but the overall model is still good for prediction purposes.
سؤال
The adjusted r2 will always increase as additional variables are added to the model.
سؤال
Multicollinearity exists when a variable is correlated to other variables.
سؤال
The sum of squared error (SSE)is

A)a measure of the total variation in Y about the mean.
B)a measure of the total variation in X about the mean.
C)a measure in the variation of Y about the regression line.
D)a measure in the variation of X about the regression line.
E)None of the above
سؤال
Which of the following statements is/are not true about regression models?

A)Estimates of the slope are found from sample data.
B)The regression line minimizes the sum of the squared errors.
C)The error is found by subtracting the actual data value from the predicted data value.
D)The dependent variable is the explanatory variable.
E)The intercept coefficient is not typically interpreted.
سؤال
The random error in a regression equation

A)is the predicted error.
B)includes both positive and negative terms.
C)will sum to a large positive number.
D)is used to estimate the accuracy of the slope.
E)is maximized in a least squares regression model.
سؤال
The value of r2 can never decrease when more variables are added to the model.
سؤال
A high correlation always implies that one variable is causing a change in the other variable.
سؤال
A prediction equation for sales and payroll was performed using simple linear regression.In the regression printout shown below,which of the following statements is/are not true? <strong>A prediction equation for sales and payroll was performed using simple linear regression.In the regression printout shown below,which of the following statements is/are not true?  </strong> A)Payroll is a good predictor of Sales based on α = 0.05. B)There is evidence of a positive linear relationship between Sales and Payroll based on α = 0.05. C)Payroll is not a good predictor of Sales based on α = 0.01. D)The coefficient of determination is equal to 0.833333. E)Payroll is the independent variable. <div style=padding-top: 35px>

A)Payroll is a good predictor of Sales based on α = 0.05.
B)There is evidence of a positive linear relationship between Sales and Payroll based on α = 0.05.
C)Payroll is not a good predictor of Sales based on α = 0.01.
D)The coefficient of determination is equal to 0.833333.
E)Payroll is the independent variable.
سؤال
Which of the following conditions can be detected from residual analysis?

A)Nonlinearity Nonconstant variance
B)Multicollinearity
C)A and B
D)A,B,and C
سؤال
Which of the following statements is false concerning the hypothesis testing procedure for a regression model?

A)The F-test statistic is used.
B)The null hypothesis is that the true slope coefficient is equal to zero.
C)The null hypothesis is rejected if the adjusted r2 is above the critical value.
D)An α level must be selected.
E)The alternative hypothesis is that the true slope coefficient is not equal to zero.
سؤال
If a qualitative variable has three categories,how many dummy variables are needed?

A)0
B)1
C)2
D)3
E)4
سؤال
A dummy variable is also called a(n)

A)indicator variable.
B)dependent variable.
C)continuous variable.
D)response variable.
E)None of the above
سؤال
A prediction equation for starting salaries (in $1,000s)and SAT scores was performed using simple linear regression.In the regression printout shown below,what can be said about the level of significance for the overall model? <strong>A prediction equation for starting salaries (in $1,000s)and SAT scores was performed using simple linear regression.In the regression printout shown below,what can be said about the level of significance for the overall model?  </strong> A)SAT is not a good predictor for starting salary. B)The significance level for the intercept indicates the model is not valid. C)The significance level for SAT indicates the slope is equal to zero. D)The significance level for SAT indicates the slope is not equal to zero. E)None of the above <div style=padding-top: 35px>

A)SAT is not a good predictor for starting salary.
B)The significance level for the intercept indicates the model is not valid.
C)The significance level for SAT indicates the slope is equal to zero.
D)The significance level for SAT indicates the slope is not equal to zero.
E)None of the above
سؤال
Which of the following is not an assumption of the regression model?

A)The errors are independent.
B)The errors are normally distributed.
C)The errors have constant variance.
D)The mean of the errors is zero.
E)The errors should have a standard deviation equal to one.
سؤال
The problem of nonconstant error variance is detected in residual analysis by which of the following?

A)a cone pattern
B)an arched pattern
C)a random pattern
D)an increasing pattern
E)a decreasing pattern
سؤال
A healthcare executive is using regression to predict total revenues.She has decided to include both patient length of stay and insurance type in her model.Insurance type can be grouped into the following categories: Medicare,Medicaid,Managed Care,Self-Pay,and Charity.Which of the following is true?

A)Insurance type will be represented in the regression model by five binary variables.
B)Insurance type will be represented in the regression model by six dummy variables.
C)Insurance type will be represented in the regression model by five dummy variables.
D)Insurance type will be represented in the regression model by four binary variables.
E)Neither binary nor dummy variables are necessary for the regression model.
سؤال
Which of the following represents the underlying linear model for hypothesis testing?

A)Y = b0 + b1 X + ε
B)Y = b0 + b1 X
C)Y = β0 + β1 X + ε
D)Y = β0 + β1 X
E)None of the above
سؤال
The problem of a nonlinear relationship is detected in residual analysis by which of the following?

A)a cone pattern
B)an arched pattern
C)a random pattern
D)an increasing pattern
E)a decreasing pattern
سؤال
The coefficient of determination resulting from a particular regression analysis was 0.85.What was the slope of the regression line?

A)0.85
B)-0.85
C)0.922
D)There is insufficient information to answer the question.
E)None of the above
سؤال
Which of the following statements is true about r2?

A)It is also called the coefficient of correlation.
B)It is also called the coefficient of determination.
C)It represents the percent of variation in X that is explained by Y.
D)It represents the percent of variation in the error that is explained by Y.
E)It ranges in value from -1 to + 1.
سؤال
The correlation coefficient resulting from a particular regression analysis was 0.25.What was the coefficient of determination?

A)0.5
B)-0.5
C)0.0625
D)There is insufficient information to answer the question.
E)None of the above
سؤال
Which of the following is an assumption of the regression model?

A)The errors are independent.
B)The errors are not normally distributed.
C)The errors have a standard deviation of zero.
D)The errors have an irregular variance.
E)The errors follow a cone pattern.
سؤال
The coefficient of determination resulting from a particular regression analysis was 0.85.What was the correlation coefficient,assuming a positive linear relationship?

A)0.5
B)-0.5
C)0.922
D)There is insufficient information to answer the question.
E)None of the above
سؤال
The diagram below illustrates data with a <strong>The diagram below illustrates data with a  </strong> A)negative correlation coefficient. B)zero correlation coefficient. C)positive correlation coefficient. D)correlation coefficient equal to +1. E)None of the above <div style=padding-top: 35px>

A)negative correlation coefficient.
B)zero correlation coefficient.
C)positive correlation coefficient.
D)correlation coefficient equal to +1.
E)None of the above
سؤال
The mean square error (MSE)is

A)denoted by s.
B)denoted by k.
C)the SSE divided by the number of observations.
D)the SSE divided by the degrees of freedom.
E)None of the above
سؤال
In a good regression model the residual plot shows

A)a cone pattern.
B)an arched pattern.
C)a random pattern.
D)an increasing pattern.
E)a decreasing pattern.
سؤال
Suppose that you believe that a cubic relationship exists between the independent variable (of time)and the dependent variable Y.Which of the following would represent a valid linear regression model?

A)Y = b0 + b1 X,where X = time3
B)Y = b0 + b1 X3,where X = time
C)Y = b0 + 3b1 X,where X = time3
D)Y = b0 + 3b1 X,where X = time
E)Y = b0 + b1 X,where X = time1/3
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Deck 4: Regression Models
1
In regression,a dependent variable is sometimes called a predictor variable.
False
2
The dependent variable is also called the response variable.
True
3
In any regression model,there is an implicit assumption that a relationship exists between the variables.
True
4
Summing the error values in a regression model is misleading because negative errors cancel out positive errors.
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5
One purpose of regression is to predict the value of one variable based on the other variable.
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6
Error is the difference in the actual value and the predicted value.
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7
Estimates of the slope,intercept,and error of a regression model are found from sample data.
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8
In a scatter diagram,the dependent variable is typically plotted on the horizontal axis.
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9
The coefficient of determination takes on values between -1 and + 1.
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10
One purpose of regression is to understand the relationship between variables.
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11
There is no relationship between variables unless the data points lie in a straight line.
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12
The SST measures the total variability in the dependent variable about the regression line.
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13
The coefficient of determination gives the proportion of the variability in the dependent variable that is explained by the regression equation.
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14
The SSE measures the total variability in the independent variable about the regression line.
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15
The variable to be predicted is the dependent variable.
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16
The regression line minimizes the sum of the squared errors.
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17
In regression,there is random error that can be predicted.
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18
The SSR indicates how much of the total variability in the dependent variable is explained by the regression model.
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19
In regression,an independent variable is sometimes called a response variable.
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20
A scatter diagram is a graphical depiction of the relationship between the dependent and independent variables.
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21
An F-test is used to determine if there is a relationship between the dependent and independent variables.
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22
The errors in a regression model are assumed to have an increasing mean.
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23
The correlation coefficient has values between −1 and +1.
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24
When the significance level is small enough in the F-test,we can reject the null hypothesis that there is no linear relationship.
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25
The error standard deviation is estimated by MSE.
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26
The multiple regression model includes multiple slope coefficients.
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27
Often,a plot of the residuals will highlight any glaring violations of the assumptions.
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28
If the significance level for the F-test is high enough,there is a relationship between the dependent and independent variables.
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29
The coefficients of each independent variable in a multiple regression model represent slopes.
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30
For statistical tests of significance about the coefficients,the null hypothesis is that the slope is 1.
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31
The errors in a regression model are assumed to have zero variance.
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32
The null hypothesis in the F-test is that there is a linear relationship between the X and Y variables.
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33
The multiple regression model includes several intercept terms.
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34
The regression model assumes the error terms are dependent.
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35
The regression model assumes the errors are normally distributed.
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36
Errors are also called residuals.
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37
The multiple regression model includes several dependent variables.
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38
Both the p-value for the F-test and r2 can be interpreted the same with multiple regression models as they are with simple linear models.
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39
If the assumptions of regression have been met,errors plotted against the independent variable will typically show patterns.
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40
The standard error of the estimate is also called the variance of the regression.
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41
Dummy variables for regression analysis can take on a value of either -1 or +1.
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42
A dummy variable can be assigned up to three values.
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43
The best model is a statistically significant model with a high r-square and few variables.
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44
A reference to the criterion used to select the regression line,to minimize the squared distances between the estimated straight line and the observed values is called

A)Mean square error.
B)Sum of Squares.
C)Maximum likelihood.
D)R-square.
E)Least Squares.
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45
The number of dummy variables must equal 1 less than the number of categories of the qualitative variable.
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46
Which of the following statements is true regarding a scatter diagram?

A)It provides very little information about the relationship between the regression variables.
B)It is a plot of the independent and dependent variables.
C)It is a line chart of the independent and dependent variables.
D)It has a value between -1 and +1.
E)It gives the percent of variation in the dependent variable that is explained by the independent variable.
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47
Which of the following equalities is correct?

A)SST = SSR + SSE
B)SSR = SST + SSE
C)SSE = SSR + SST
D)SST = SSC + SSR
E)SSE = Actual Value - Predicted Value
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48
If computing a causal linear regression model of Y = a + bX and the resultant r2 is very near zero,then one would be able to conclude that

A)Y = a + bX is a good forecasting method.
B)Y = a + bX is not a good forecasting method.
C)a multiple linear regression model is a good forecasting method for the data.
D)a multiple linear regression model is not a good forecasting method for the data.
E)None of the above
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49
Transformations may be used when nonlinear relationships exist between variables.
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50
A variable should be added to the model regardless of the impact (increase or decrease)on the adjusted r2 value.
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51
In regression,a binary variable is also called an indicator variable.
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52
Another name for a dummy variable is a binary variable.
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53
If multicollinearity exists,then individual interpretation of the variables is questionable,but the overall model is still good for prediction purposes.
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54
The adjusted r2 will always increase as additional variables are added to the model.
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55
Multicollinearity exists when a variable is correlated to other variables.
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56
The sum of squared error (SSE)is

A)a measure of the total variation in Y about the mean.
B)a measure of the total variation in X about the mean.
C)a measure in the variation of Y about the regression line.
D)a measure in the variation of X about the regression line.
E)None of the above
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57
Which of the following statements is/are not true about regression models?

A)Estimates of the slope are found from sample data.
B)The regression line minimizes the sum of the squared errors.
C)The error is found by subtracting the actual data value from the predicted data value.
D)The dependent variable is the explanatory variable.
E)The intercept coefficient is not typically interpreted.
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58
The random error in a regression equation

A)is the predicted error.
B)includes both positive and negative terms.
C)will sum to a large positive number.
D)is used to estimate the accuracy of the slope.
E)is maximized in a least squares regression model.
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59
The value of r2 can never decrease when more variables are added to the model.
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60
A high correlation always implies that one variable is causing a change in the other variable.
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61
A prediction equation for sales and payroll was performed using simple linear regression.In the regression printout shown below,which of the following statements is/are not true? <strong>A prediction equation for sales and payroll was performed using simple linear regression.In the regression printout shown below,which of the following statements is/are not true?  </strong> A)Payroll is a good predictor of Sales based on α = 0.05. B)There is evidence of a positive linear relationship between Sales and Payroll based on α = 0.05. C)Payroll is not a good predictor of Sales based on α = 0.01. D)The coefficient of determination is equal to 0.833333. E)Payroll is the independent variable.

A)Payroll is a good predictor of Sales based on α = 0.05.
B)There is evidence of a positive linear relationship between Sales and Payroll based on α = 0.05.
C)Payroll is not a good predictor of Sales based on α = 0.01.
D)The coefficient of determination is equal to 0.833333.
E)Payroll is the independent variable.
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62
Which of the following conditions can be detected from residual analysis?

A)Nonlinearity Nonconstant variance
B)Multicollinearity
C)A and B
D)A,B,and C
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63
Which of the following statements is false concerning the hypothesis testing procedure for a regression model?

A)The F-test statistic is used.
B)The null hypothesis is that the true slope coefficient is equal to zero.
C)The null hypothesis is rejected if the adjusted r2 is above the critical value.
D)An α level must be selected.
E)The alternative hypothesis is that the true slope coefficient is not equal to zero.
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64
If a qualitative variable has three categories,how many dummy variables are needed?

A)0
B)1
C)2
D)3
E)4
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65
A dummy variable is also called a(n)

A)indicator variable.
B)dependent variable.
C)continuous variable.
D)response variable.
E)None of the above
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66
A prediction equation for starting salaries (in $1,000s)and SAT scores was performed using simple linear regression.In the regression printout shown below,what can be said about the level of significance for the overall model? <strong>A prediction equation for starting salaries (in $1,000s)and SAT scores was performed using simple linear regression.In the regression printout shown below,what can be said about the level of significance for the overall model?  </strong> A)SAT is not a good predictor for starting salary. B)The significance level for the intercept indicates the model is not valid. C)The significance level for SAT indicates the slope is equal to zero. D)The significance level for SAT indicates the slope is not equal to zero. E)None of the above

A)SAT is not a good predictor for starting salary.
B)The significance level for the intercept indicates the model is not valid.
C)The significance level for SAT indicates the slope is equal to zero.
D)The significance level for SAT indicates the slope is not equal to zero.
E)None of the above
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67
Which of the following is not an assumption of the regression model?

A)The errors are independent.
B)The errors are normally distributed.
C)The errors have constant variance.
D)The mean of the errors is zero.
E)The errors should have a standard deviation equal to one.
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68
The problem of nonconstant error variance is detected in residual analysis by which of the following?

A)a cone pattern
B)an arched pattern
C)a random pattern
D)an increasing pattern
E)a decreasing pattern
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69
A healthcare executive is using regression to predict total revenues.She has decided to include both patient length of stay and insurance type in her model.Insurance type can be grouped into the following categories: Medicare,Medicaid,Managed Care,Self-Pay,and Charity.Which of the following is true?

A)Insurance type will be represented in the regression model by five binary variables.
B)Insurance type will be represented in the regression model by six dummy variables.
C)Insurance type will be represented in the regression model by five dummy variables.
D)Insurance type will be represented in the regression model by four binary variables.
E)Neither binary nor dummy variables are necessary for the regression model.
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70
Which of the following represents the underlying linear model for hypothesis testing?

A)Y = b0 + b1 X + ε
B)Y = b0 + b1 X
C)Y = β0 + β1 X + ε
D)Y = β0 + β1 X
E)None of the above
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71
The problem of a nonlinear relationship is detected in residual analysis by which of the following?

A)a cone pattern
B)an arched pattern
C)a random pattern
D)an increasing pattern
E)a decreasing pattern
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72
The coefficient of determination resulting from a particular regression analysis was 0.85.What was the slope of the regression line?

A)0.85
B)-0.85
C)0.922
D)There is insufficient information to answer the question.
E)None of the above
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73
Which of the following statements is true about r2?

A)It is also called the coefficient of correlation.
B)It is also called the coefficient of determination.
C)It represents the percent of variation in X that is explained by Y.
D)It represents the percent of variation in the error that is explained by Y.
E)It ranges in value from -1 to + 1.
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74
The correlation coefficient resulting from a particular regression analysis was 0.25.What was the coefficient of determination?

A)0.5
B)-0.5
C)0.0625
D)There is insufficient information to answer the question.
E)None of the above
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75
Which of the following is an assumption of the regression model?

A)The errors are independent.
B)The errors are not normally distributed.
C)The errors have a standard deviation of zero.
D)The errors have an irregular variance.
E)The errors follow a cone pattern.
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76
The coefficient of determination resulting from a particular regression analysis was 0.85.What was the correlation coefficient,assuming a positive linear relationship?

A)0.5
B)-0.5
C)0.922
D)There is insufficient information to answer the question.
E)None of the above
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77
The diagram below illustrates data with a <strong>The diagram below illustrates data with a  </strong> A)negative correlation coefficient. B)zero correlation coefficient. C)positive correlation coefficient. D)correlation coefficient equal to +1. E)None of the above

A)negative correlation coefficient.
B)zero correlation coefficient.
C)positive correlation coefficient.
D)correlation coefficient equal to +1.
E)None of the above
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78
The mean square error (MSE)is

A)denoted by s.
B)denoted by k.
C)the SSE divided by the number of observations.
D)the SSE divided by the degrees of freedom.
E)None of the above
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79
In a good regression model the residual plot shows

A)a cone pattern.
B)an arched pattern.
C)a random pattern.
D)an increasing pattern.
E)a decreasing pattern.
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80
Suppose that you believe that a cubic relationship exists between the independent variable (of time)and the dependent variable Y.Which of the following would represent a valid linear regression model?

A)Y = b0 + b1 X,where X = time3
B)Y = b0 + b1 X3,where X = time
C)Y = b0 + 3b1 X,where X = time3
D)Y = b0 + 3b1 X,where X = time
E)Y = b0 + b1 X,where X = time1/3
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